Thermal and Scalar Dissipation Rates of Stretched Cylindrical Diffusion Flame
Structures of stretched cylindrical diffusion flame with large curvature were investigated experimentally. Temperature distributions of fuel-diluent mixture/air flames were measured. Fuel was diluted with diluent gases (N2, Ar and He) in order to set the Lewis number Le~1. Fuel (Air) was supplied fr...
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Veröffentlicht in: | Nihon Kikai Gakkai rombunshuu. B hen 2013, Vol.79(804), pp.1685-1693 |
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container_title | Nihon Kikai Gakkai rombunshuu. B hen |
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creator | SUENAGA, Yosuke YANAOKA, Hideki KITANO, Michio MOMOTORI, Daisuke |
description | Structures of stretched cylindrical diffusion flame with large curvature were investigated experimentally. Temperature distributions of fuel-diluent mixture/air flames were measured. Fuel was diluted with diluent gases (N2, Ar and He) in order to set the Lewis number Le~1. Fuel (Air) was supplied from inside (outside) of the cylindrical flame. Thermal dissipation rates were calculated from measured temperature distribution. In the case of Le=1, the scalar dissipation rate is proportional to the thermal dissipation rate. Therefore, the stoichiometric scalar dissipation rate was evaluated using the maximum value of the thermal dissipation rates obtained from each temperature distribution. Generally, it is known that the scalar dissipation rate of the counterflow flat diffusion flame increases as the flame stretch rate increases. However, in the case of the cylindrical diffusion flames, the scalar dissipation rate has a maximum value or decreases with the stretch rate. |
doi_str_mv | 10.1299/kikaib.79.1685 |
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Temperature distributions of fuel-diluent mixture/air flames were measured. Fuel was diluted with diluent gases (N2, Ar and He) in order to set the Lewis number Le~1. Fuel (Air) was supplied from inside (outside) of the cylindrical flame. Thermal dissipation rates were calculated from measured temperature distribution. In the case of Le=1, the scalar dissipation rate is proportional to the thermal dissipation rate. Therefore, the stoichiometric scalar dissipation rate was evaluated using the maximum value of the thermal dissipation rates obtained from each temperature distribution. Generally, it is known that the scalar dissipation rate of the counterflow flat diffusion flame increases as the flame stretch rate increases. However, in the case of the cylindrical diffusion flames, the scalar dissipation rate has a maximum value or decreases with the stretch rate.</description><identifier>ISSN: 0387-5016</identifier><identifier>EISSN: 1884-8346</identifier><identifier>DOI: 10.1299/kikaib.79.1685</identifier><language>eng ; jpn</language><publisher>The Japan Society of Mechanical Engineers</publisher><subject>Combustion ; Diffusion Flame ; Flame Curvature ; Flame Stretch ; Scalar Dissipation Rate ; Thermal Dissipation Rate</subject><ispartof>TRANSACTIONS OF THE JAPAN SOCIETY OF MECHANICAL ENGINEERS Series B, 2013, Vol.79(804), pp.1685-1693</ispartof><rights>2013 The Japan Society of Mechanical Engineers</rights><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c2545-98b222ebb308fd201c23a44bda75a062dba2b46d7538c89744cb7ca86d9fc88a3</citedby></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>314,776,780,1876,4009,27902,27903,27904</link.rule.ids></links><search><creatorcontrib>SUENAGA, Yosuke</creatorcontrib><creatorcontrib>YANAOKA, Hideki</creatorcontrib><creatorcontrib>KITANO, Michio</creatorcontrib><creatorcontrib>MOMOTORI, Daisuke</creatorcontrib><title>Thermal and Scalar Dissipation Rates of Stretched Cylindrical Diffusion Flame</title><title>Nihon Kikai Gakkai rombunshuu. B hen</title><addtitle>Trans.JSME, B</addtitle><description>Structures of stretched cylindrical diffusion flame with large curvature were investigated experimentally. Temperature distributions of fuel-diluent mixture/air flames were measured. Fuel was diluted with diluent gases (N2, Ar and He) in order to set the Lewis number Le~1. Fuel (Air) was supplied from inside (outside) of the cylindrical flame. Thermal dissipation rates were calculated from measured temperature distribution. In the case of Le=1, the scalar dissipation rate is proportional to the thermal dissipation rate. Therefore, the stoichiometric scalar dissipation rate was evaluated using the maximum value of the thermal dissipation rates obtained from each temperature distribution. Generally, it is known that the scalar dissipation rate of the counterflow flat diffusion flame increases as the flame stretch rate increases. However, in the case of the cylindrical diffusion flames, the scalar dissipation rate has a maximum value or decreases with the stretch rate.</description><subject>Combustion</subject><subject>Diffusion Flame</subject><subject>Flame Curvature</subject><subject>Flame Stretch</subject><subject>Scalar Dissipation Rate</subject><subject>Thermal Dissipation Rate</subject><issn>0387-5016</issn><issn>1884-8346</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2013</creationdate><recordtype>article</recordtype><recordid>eNpNkDtPwzAURi0EElXpyuw_kOD4nREFCkhFSLTM0fWLmqZpZYeh_55UhYrpDvecbzgI3VakrGhd323iBqIpVV1WUosLNKm05oVmXF6iCWFaFYJU8hrNco6GECkZZ1xM0Otq7dMWOgy9w0sLHST8EEdoD0Pc9fgdBp_xLuDlkPxg197h5tDF3qU4wiMawnc-gvMOtv4GXQXosp_93in6mD-umudi8fb00twvCksFF0WtDaXUG8OIDo6SylIGnBsHSgCR1BmghkunBNNW14pza5QFLV0drNbApqg87dq0yzn50O5T3EI6tBVpjz3aU49W1e2xxyg0J-ErD_DpzzikIdrO_8M14X_W-WvXkFrfsx8ROG1m</recordid><startdate>2013</startdate><enddate>2013</enddate><creator>SUENAGA, Yosuke</creator><creator>YANAOKA, Hideki</creator><creator>KITANO, Michio</creator><creator>MOMOTORI, Daisuke</creator><general>The Japan Society of Mechanical Engineers</general><scope>AAYXX</scope><scope>CITATION</scope></search><sort><creationdate>2013</creationdate><title>Thermal and Scalar Dissipation Rates of Stretched Cylindrical Diffusion Flame</title><author>SUENAGA, Yosuke ; YANAOKA, Hideki ; KITANO, Michio ; MOMOTORI, Daisuke</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c2545-98b222ebb308fd201c23a44bda75a062dba2b46d7538c89744cb7ca86d9fc88a3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng ; jpn</language><creationdate>2013</creationdate><topic>Combustion</topic><topic>Diffusion Flame</topic><topic>Flame Curvature</topic><topic>Flame Stretch</topic><topic>Scalar Dissipation Rate</topic><topic>Thermal Dissipation Rate</topic><toplevel>online_resources</toplevel><creatorcontrib>SUENAGA, Yosuke</creatorcontrib><creatorcontrib>YANAOKA, Hideki</creatorcontrib><creatorcontrib>KITANO, Michio</creatorcontrib><creatorcontrib>MOMOTORI, Daisuke</creatorcontrib><collection>CrossRef</collection><jtitle>Nihon Kikai Gakkai rombunshuu. B hen</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>SUENAGA, Yosuke</au><au>YANAOKA, Hideki</au><au>KITANO, Michio</au><au>MOMOTORI, Daisuke</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Thermal and Scalar Dissipation Rates of Stretched Cylindrical Diffusion Flame</atitle><jtitle>Nihon Kikai Gakkai rombunshuu. B hen</jtitle><addtitle>Trans.JSME, B</addtitle><date>2013</date><risdate>2013</risdate><volume>79</volume><issue>804</issue><spage>1685</spage><epage>1693</epage><pages>1685-1693</pages><issn>0387-5016</issn><eissn>1884-8346</eissn><abstract>Structures of stretched cylindrical diffusion flame with large curvature were investigated experimentally. Temperature distributions of fuel-diluent mixture/air flames were measured. Fuel was diluted with diluent gases (N2, Ar and He) in order to set the Lewis number Le~1. Fuel (Air) was supplied from inside (outside) of the cylindrical flame. Thermal dissipation rates were calculated from measured temperature distribution. In the case of Le=1, the scalar dissipation rate is proportional to the thermal dissipation rate. Therefore, the stoichiometric scalar dissipation rate was evaluated using the maximum value of the thermal dissipation rates obtained from each temperature distribution. Generally, it is known that the scalar dissipation rate of the counterflow flat diffusion flame increases as the flame stretch rate increases. However, in the case of the cylindrical diffusion flames, the scalar dissipation rate has a maximum value or decreases with the stretch rate.</abstract><pub>The Japan Society of Mechanical Engineers</pub><doi>10.1299/kikaib.79.1685</doi><tpages>9</tpages><oa>free_for_read</oa></addata></record> |
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subjects | Combustion Diffusion Flame Flame Curvature Flame Stretch Scalar Dissipation Rate Thermal Dissipation Rate |
title | Thermal and Scalar Dissipation Rates of Stretched Cylindrical Diffusion Flame |
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